US8276800B2 - Support structures and methods of using the same - Google Patents
Support structures and methods of using the same Download PDFInfo
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- US8276800B2 US8276800B2 US12/939,431 US93943110A US8276800B2 US 8276800 B2 US8276800 B2 US 8276800B2 US 93943110 A US93943110 A US 93943110A US 8276800 B2 US8276800 B2 US 8276800B2
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- support structure
- body portion
- anvil
- fluid
- shaft
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- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B17/00—Surgical instruments, devices or methods
- A61B2017/00831—Material properties
- A61B2017/00893—Material properties pharmaceutically effective
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B17/00—Surgical instruments, devices or methods
- A61B2017/00831—Material properties
- A61B2017/00898—Material properties expandable upon contact with fluid
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B17/00—Surgical instruments, devices or methods
- A61B17/11—Surgical instruments, devices or methods for performing anastomosis; Buttons for anastomosis
- A61B17/115—Staplers for performing anastomosis, e.g. in a single operation
- A61B2017/1157—Staplers for performing anastomosis, e.g. in a single operation applying the staples radially
Definitions
- Staples have traditionally been used to replace suturing when joining or anastomosing various body structures, such as, for example, the bowel or bronchus.
- the surgical stapling devices employed to apply these staples are generally designed to simultaneously cut and seal an extended segment of tissue in a patient, thus vastly reducing the time and risks of such procedures.
- Linear or annular surgical stapling devices are employed by surgeons to sequentially or simultaneously apply one or more linear rows of surgical fasteners, e.g., staples or two-part fasteners, to body tissue for the purpose of joining segments of body tissue together and/or for the creation of anastomoses.
- Linear surgical stapling devices generally include a pair of jaws or finger-like structures between which body tissue to be joined is placed. When the surgical stapling device is actuated and/or “fired”, firing bars move longitudinally and contact staple drive members in one of the jaws, and surgical staples are pushed through the body tissue and into/against an anvil in the opposite jaw thereby crimping the staples closed.
- a knife blade may be provided to cut between the rows/lines of staples. Examples of such surgical stapling devices are described in U.S. Pat. Nos. 4,354,628, 5,014,899 and 5,040,715, the entirety of each of which is incorporated herein by reference.
- Annular surgical stapling devices generally include an annular staple cartridge assembly including a plurality of annular rows of staples, typically two, an anvil assembly operatively associated with the annular cartridge assembly, and an annular blade disposed internal of the rows of staples. Examples of such annular surgical stapling devices are described in U.S. Pat. Nos. 5,799,857 and 5,915,616 to Robertson et al., the entirety of each of which is incorporated herein by reference.
- surgical supports e.g., meshes
- surgeons to bridge, repair and/or reinforce tissue defects with a patient, especially those occurring in the abdominal wall, chest wall, diaphragm and other musculo-aponeurotic areas of the body. Examples of surgical supports are disclosed in U.S. Pat. Nos. 3,054,406, 3,124,136, 4,347,847, 4,655,221, 4,838,884 and 5,002,551, the entirety of each of which is incorporated herein by reference.
- the legs of the staple When the staples are applied in surgical procedures utilizing surgical supports (i.e., reinforcing material), the legs of the staple typically pass from the cartridge jaw through a layer of the surgical support, and through the patient's tissue before encountering the anvil jaw.
- the legs of the staple typically pass from the cartridge jaw through a first layer of the surgical support, then through the patient's tissue, and finally through a second layer of the surgical support before encountering the anvil jaw. With the staples in place, the stapled tissue is clamped between the layers of the surgical support.
- biological tissue adhesives have been developed for tissue repair and the creation of anastomoses.
- biological adhesives bond separated tissues together to aid in the healing process and to enhance the tissue strength.
- Such adhesives may be used instead of suturing and stapling, for example, in surgical procedures, for the repair of tissue or the creation of anastomoses.
- biocompatible adhesive offers many advantages to the patient and the surgeon alike, such as, for example, the possible reduction in the number of staples used, immediate sealing of the tissue being treated, a strengthening of the anastomosis, and a reduction in the occurrence of bleeding from the blood vessels, leakage through the tissue joint, and stricture. Moreover, use of biocompatible adhesives tends to minimize foreign body reaction and scarring.
- annular support structure which operates in conjunction with any end-to-end, annular or circular stapling device and assists in maintaining the lumen of the anastomosed bowel or other tubular organ patent or open over time.
- the aperture may be defined by an inner terminal edge of the body.
- the inner terminal edge may be disposed radially inward of staple receiving slots of a staple cartridge assembly disposed in the tubular body.
- Each membrane may include a first inner layer and a second outer layer.
- the second outer layer of each membrane may swell at a rate greater than the first inner layer.
- the second outer layers of the first and second membranes are made from a hydrogel.
- the first inner layer of each of the first and second membranes may be constructed from a substantially non-absorbable material.
- the first inner layer of each of the first and second membranes may be fabricated from a bio-absorbable mesh fabric.
- a method of disposing a support structure between adjacent intestinal sections includes the step of providing a circular surgical anastomosis device.
- the circular surgical anastomosis device includes an anvil assembly having an anvil member and a first shaft; and a tubular body portion having an annular knife operatively disposed therein and a second shaft disposed radially inward of the annular knife, the first shaft of the anvil assembly being selectively attachable to the second shaft of the tubular body.
- the method further includes the steps of inserting the anvil assembly into a first intestinal section; inserting the tubular body portion into a second intestinal section; disposing a support structure between the first intestinal section and the second intestinal section, the support structure having at least one layer of expandable material; approximating the anvil assembly and tubular body portion with one another so that an end portion of the first intestinal section, the support structure, and an end portion of the second intestinal section are disposed between the anvil member and the tubular body portion, the support structure being disposed between the first intestinal section and the second intestinal section; firing the surgical anastomosis device to sever the portions of the first and second intestinal sections disposed radially inward of the annular knife, and to touch the portions of the first and second intestinal sections radially outward of the annular knife against the structure; and expanding the at least one layer of expandable material
- the anvil assembly may include a first shaft and the tubular body portion includes a second shaft disposed radially inward of the annular knife.
- the first shaft of the anvil member is attachable to the second shaft of the tubular body portion.
- the method may further include the step of attaching the first shaft of the anvil assembly to the second shaft of the tubular body portion prior to the step of approximating the anvil assembly to the tubular body portion.
- the tubular body portion may carry a plurality of surgical staples.
- the surgical staples may be disposed radially outward of the annular knife. Accordingly, in use, firing the surgical anastomosis device includes deploying the plurality of staples so that the staples penetrate a first interstitial section, the support structure and then a second interstitial section.
- the support structure may include a body and a first and a second membrane extending radially outward from the body.
- Each of the first and second membranes of the support structure may be made from a polymeric film, such as, for example, polyethylene.
- expanding the at least one layer of expandable material may include deploying the first and second membranes from a rolled-up condition to an expanded condition.
- the first membrane may extend in a substantially distal direction from the body portion of the support structure and the second membrane may extend in a substantially proximal direction from the body portion of the support structure.
- the method may further include the step of pulling on at least one rip-cord to expand the first and second membranes.
- Each membrane of the support structure may include a first inner layer and a second outer layer. Accordingly, expanding the at least one layer may include expanding the second outer layer at a greater rate than the first inner layer. The second outer layer of each membrane of the support structure may swell at a rate greater than the first inner layer.
- the second outer layers of the first and second membranes may be made from a hydrogel.
- the first inner layer of each of the first and second membranes of the support structure may be constructed from a substantially non-absorbable material.
- the first inner layer of each of the first and second membranes may be fabricated from a bio-absorbable mesh fabric.
- the body may be perforated or porous.
- the at least one layer of expandable material may expand upon fluid absorption.
- the body may be fabricated from at least one of a polyglactic material, a glycolide homopolymer, and a synthetic absorbable lactomer 9-1 material.
- the body may be a mesh or other fabric.
- the body may include a wound treatment material.
- the wound treatment material is desirably at least one of an adhesive, a sealant, a hemostat, and a medicament.
- the body may be compressible so that the outer terminal edge of the body extends beyond the outer radial surface of the anvil and tubular body portion. Accordingly, the body may be fabricated from foam.
- the body has a first thickness greater than one quarter of a diameter of the body.
- the support structure has an unhydrated condition wherein the body has a first diameter and a first thickness, and a hydrated condition wherein the body has a second diameter greater than the first diameter and a second thickness greater than the first thickness.
- the body desirably expands from the first diameter and the first thickness to a second diameter and a second thickness upon application of a fluid thereto.
- a method of performing a surgical anastomosis procedure includes the steps of providing an anastomosis apparatus having an anvil assembly movably mounted with respect to a tubular body portion; providing a support structure including a body having an outer terminal edge, and an aperture therethrough, the body being compressible; disposing an anvil assembly into a first intestinal section; disposing a distal end portion of the surgical stapling apparatus in a second intestinal section; positioning the support structure on a shaft of the anvil assembly; approximating the anvil assembly and the tubular body portion to capture the body of the support structure between the first intestinal section and the second intestinal section and to compress the body portion therebetween so that the body extends radially beyond the anvil member and the tubular body portion to seal the perimeter of the anastomosis site; and firing the anastomosis apparatus to join the first intestinal section, support structure, and second intestinal section.
- the support structure may have an unhydrated condition wherein the body has a first diameter and a first thickness, and a hydrated condition wherein the body has a second diameter greater than the first diameter and a second thickness greater than the first thickness.
- the support structure may be pre-mounted onto the shaft of the anvil assembly prior to positioning of the anvil assembly in the first intestinal section. Accordingly, prior to approximating the anvil assembly and the tubular body portion, the method further includes the step of hydrating the support structure to expand the body from the first diameter and the first thickness to a second diameter and a second thickness.
- the body may be constructed from a first part of a two-part wound treatment material, and the fluid applied thereto is a second part of the two-part wound treatment material.
- FIG. 1 is a perspective view of an exemplary annular surgical stapling device
- FIG. 2 is a perspective view of a support structure in accordance with an embodiment of the present disclosure, shown in an undeployed condition;
- FIG. 3 is a cross-sectional view of the support structure of FIG. 2 , as taken through 3 - 3 of FIG. 2 ;
- FIG. 4 is a perspective view of the support structure of FIGS. 2 and 3 , shown in a deployed condition;
- FIG. 5 is a cross-sectional view of the support structure of FIG. 4 , shown in the deployed condition;
- FIG. 6 is a perspective view of the intestinal area of a patient, illustrating a method of positioning the support structure of FIGS. 2-5 on the anvil rod of the annular stapling device of FIG. 1 ;
- FIG. 8 is a longitudinal cross-sectional view illustrating the anvil rod mounted to the annular stapling device within a surgical site and the support structure of FIGS. 2-5 , in an undeployed condition, disposed between the apposed surfaces of the tissue;
- FIG. 9 is a longitudinal cross-sectional view illustrating the anvil rod mounted to the annular stapling device within a surgical site and the support structure of FIGS. 2-5 , in a deployed condition, disposed between the apposed surfaces of the tissue;
- FIG. 10 is a perspective view of an support structure according to an alternate embodiment of the present disclosure.
- FIG. 11 is a cross-sectional view of the support structure of FIG. 10 , as taken through 11 - 11 of FIG. 10 ;
- FIG. 12 is an enlarged view of the indicated area of detail of FIG. 11 ;
- FIG. 13 is a longitudinal cross-sectional view illustrating the anvil rod mounted to the annular stapling device within a surgical site and the support structure of FIGS. 10-12 , in an undeployed condition, disposed between the apposed surfaces of the tissue;
- FIG. 14 is a longitudinal cross-sectional view illustrating the anvil rod mounted to the annular stapling device within a surgical site and the support structure of FIGS. 10-12 , in a deployed condition, disposed between the apposed surfaces of the tissue;
- FIG. 15 is a perspective view of a support structure according to yet another alternate embodiment of the present disclosure.
- FIG. 16 is a schematic perspective view of an anvil assembly of the annular stapling device of FIG. 1 including yet another support structure operatively associated therewith and in an unexpanded condition;
- FIG. 18 is a perspective view of a support structure in accordance with another embodiment of the present disclosure, for use with the annular surgical stapling device of FIG. 1 ;
- FIG. 19 is a cross-sectional view of the support structure of FIG. 18 , as taken through 19 - 19 of FIG. 18 ;
- FIG. 21 is an enlarged cross-sectional view, of the indicated area of detail of FIG. 20 ;
- FIG. 22 is an enlarged cross-sectional view, of the indicated area of detail of FIG. 20 , illustrating the annular support structure in a first condition
- FIG. 23 is an enlarged cross-sectional view, of the indicated area of detail of FIG. 20 , illustrating the annular support structure in a second condition;
- FIG. 24 is a perspective view of a support structure according to an alternate embodiment of the present disclosure.
- FIG. 25 is a transverse cross-sectional view of the support structure of FIG. 24 , as taken through 25 - 25 of FIG. 10 ;
- FIG. 26 is a perspective view of the intestinal area of the patient, illustrating the positioning of the support structure of FIGS. 24 and 25 between the anvil assembly and the tubular body portion;
- FIG. 27 is a longitudinal cross-sectional view of the intestinal area of the patient illustrating the intestinal sections approximated toward one another to contact the support structure of FIGS. 24 and 25 ;
- FIG. 28 is a longitudinal cross-sectional view of the intestinal area of the patient illustrating the intestinal sections approximated toward one another to compress the support structure of FIGS. 24 and 25 between the intestinal sections;
- FIG. 29 is a side elevational view of an anvil assembly including the support structure of FIGS. 24 and 25 , in an unexpanded condition, operatively secured to the stem thereof;
- FIG. 30 is a side elevational view of an anvil assembly including the support structure of FIGS. 24 and 25 , in an expanded condition, operatively secured to the stem thereof
- distal refers to that portion which is furthest from the user while the term “proximal” refers to that portion which is closest to the user.
- Surgical stapling device 10 for use with the annular adhesive structures disclosed herein, is generally designated as 10 .
- Surgical stapling device 10 includes a handle assembly 12 having at least one pivotable actuating handle member 14 , and an advancing member 16 .
- a tubular body portion 20 Extending from handle member 12 , there is provided a tubular body portion 20 which may be constructed so as to have a curved shape along its length.
- Body portion 20 terminates in a staple cartridge assembly 22 which includes a pair of annular arrays of staple receiving slots 36 having a staple (not shown) disposed in each one of staple receiving slots 36 .
- anvil assembly 30 including an anvil member 26 and a shaft 28 operatively associated therewith for removably connecting anvil assembly 30 to a distal end portion or connection member 40 of stapling device 10 .
- Staple cartridge assembly 22 may be fixedly connected to the distal end of tubular body portion 20 or may be configured to concentrically fit within the distal end of tubular body portion 20 .
- staple cartridge assembly 22 includes a staple pusher (not shown) including a proximal portion having a generally frusto-conical shape and a distal portion defining two concentric rings of peripherally spaced fingers (not shown), each one of which is received within a respective staple receiving slot 36 .
- a knife substantially in the form of an open cup with the rim thereof defining a knife edge, is disposed within staple cartridge assembly 22 and mounted to a distal surface of a staple pusher (not shown).
- the knife edge is disposed radially inward of the pair of annular arrays of staples. Accordingly, in use, as the staple pusher is advanced, the knife is also advanced axially outward.
- structure 100 is sized such that when structure 100 is operatively associated with stapling device 10 , as will be described in greater detail below, outer terminal edge 106 extends radially beyond staple retaining pockets 36 of staple cartridge assembly 22 . Additionally, aperture 104 of structure 100 is sized to at least receive shaft 28 of anvil assembly 30 therethrough. In another embodiment, the distance between outer terminal edge 106 and inner terminal edge 108 is substantially order for the anastomosis to sufficiently heal prior to structure 100 being absorbed into the body.
- Bio-absorbable materials used for body 102 of structure 100 include, and are not limited to, those fabricated from homopolymers, copolymers or blends obtained from one or more monomers selected from the group consisting of glycolide, glycolic acid, lactide, lactic acid, p-dioxanone, ⁇ -caprolactone, dioxanone, polyalkylene oxides, and trimethylene carbonate.
- Other bio-absorbable materials include and are not limited to, for example, Polyglycolic Acid (PGA) and Polylactic Acid (PLA).
- body 102 may be fabricated from bio-absorbable felt, PTFE, gelatin or any other bio-absorbable materials.
- Illustrative examples of bioabsorbable materials include DEXONTM mesh, absorbable felts, such as POLYSORBTM, and foams, such as polyurethane.
- body 102 of structure 100 may be impregnated with a wound treatment material “W” which is a pre-cured adhesive or sealant.
- W a wound treatment material
- the pre-cured sealant or adhesive will react with the moisture and/or heat of the body tissue to thereby activate the sealing and/or adhesive properties of the sealant or adhesive.
- the pre-cured sealant or adhesive may be a hydro-gel or the like.
- the wound treatment material “W” is any material for joining, healing, sealing or otherwise treating tissue.
- the wound treatment material is a bio-compatible sealant, including, and not limited, to sealants which cure upon tissue contact, sealants which cure upon exposure to ultraviolet (UV) light, sealants which are multiple-part systems, including two-part systems which equal to a width of a tissue contact surface 24 (see FIG. 1 ) of staple cartridge assembly 22 .
- UV ultraviolet
- body 102 of structure 100 may be fabricated from or include a surgical grade, biocompatible, non-absorbable (i.e., permanent) mesh or material desirably impregnated with an adhesive, sealant and/or other medicament.
- body 102 may be fabricated from “TEFLON”, which is a registered trademark owned by DuPont de Nemours & Co.
- body 102 may be fabricated from a biocompatible polymeric foam, felt, polytetrafluoroethylene (PTFE), gelatin, fabric or the like, or any other biocompatible material.
- Non-absorbable materials used for body 102 include, and are not limited to, those that are fabricated from such polymers as polyethylene, polypropylene, nylon, polyethylene terephthalate, polytetrafluoroethylene, polyvinylidene fluoride, and the like. Further non-absorbable materials include and are not limited to stainless steel, titanium and the like.
- body 102 of structure 100 may be fabricated from a bio-absorbable material which is desirably impregnated with an adhesive, sealant, and/or other medicament (i.e., wound treatment material).
- the sealant component of structure 100 functions to retard any bleeding which may occur from the tissue
- the adhesive component of structure 100 functions to secure the approximated tissue together
- the bio-absorbability of structure 100 allows for the at least a portion of structure 100 to be absorbed into the body after a predetermined amount of time.
- structure 100 may remain in place in the body for approximately 2-3 weeks in are kept isolated from one another and are combined, or any combinations thereof. Any known suitable adhesive may be used.
- sealants and/or adhesives are curable.
- sealants may have a cure time of from about 10 to 15 seconds may be used.
- the sealant and/or adhesive is a bioabsorbable and/or bio-resorbable material.
- a sealant and/or adhesive having a cure time of about 30 seconds may be used.
- wound treatment material “W” may be a pre-cured adhesive or sealant.
- wound treatment material “W” may include one or a combination of adhesives, hemostats, sealants, or any other tissue or wound-treating material.
- Surgical biocompatible wound treatment materials “W”, which may be used in accordance with the present disclosure, include adhesives whose function is to attach or hold organs, tissues or structures, sealants to prevent fluid leakage, and hemostats to halt or prevent bleeding.
- adhesives which can be employed include protein derived, aldehyde-based adhesive materials, for example, the commercially available albumin/glutaraldehyde materials sold under the trade designation BioGlueTM by Cryolife, Inc., and cyanoacrylate-based materials sold under the trade designations IndermilTM and Derma BondTM by Tyco Healthcare Group, LP and Ethicon Endosurgery, Inc., respectively.
- sealants which can be employed, include fibrin sealants and collagen-based and synthetic polymer-based tissue sealants.
- commercially available sealants are synthetic polyethylene glycol-based, hydrogel materials sold under the trade designation CoSealTM by Cohesion Technologies and Baxter International, Inc.
- hemostat materials examples include fibrin-based, collagen-based, oxidized regenerated cellulose-based and gelatin-based topical hemostats.
- examples of commercially available hemostat materials are fibrinogen-thrombin combination materials sold under the trade designations CoStasisTM by Tyco Healthcare Group, LP, and TisseelTM sold by Baxter International, Inc. Hemostats herein include astringents, e.g., aluminum sulfate, and coagulants.
- Wound treatment material “W” may include visco-elastic film forming materials, cross-linking reactive agents, and energy curable adhesives. It is envisioned that wound treatment material “W”, and in particular, adhesive may be cured with the application of water and/or glycerin thereto. In this manner, the water and/or glycerin cure the adhesive and hydrate the wound.
- wound treatment material “W” may include, for example, compositions and/or compounds which accelerate or beneficially modify the healing process when particles of the composition and/or compound are applied to or exposed to a surgical repair site.
- the wound treatment material “W” may be a therapeutic agent which will be deposited at the repair site.
- the therapeutic agent can be chosen for its antimicrobial properties, capability for promoting repair or reconstruction and/or new tissue growth.
- Antimicrobial agents such as broad spectrum antibiotic (gentamycin sulfate, erythromycin or derivatized glycopeptides) which are slowly released into the tissue can be applied in this manner to aid in combating clinical and sub-clinical infections in a tissue repair site.
- wound treatment material “W” may include one or several growth promoting factors, e.g., fibroblast growth factor, bone growth factor, epidermal growth factor, platelet derived growth factor, macrophage derived growth factor, alveolar derived growth factor, monocyte derived growth factor, magainin, and so forth.
- growth promoting factors e.g., fibroblast growth factor, bone growth factor, epidermal growth factor, platelet derived growth factor, macrophage derived growth factor, alveolar derived growth factor, monocyte derived growth factor, magainin, and so forth.
- Some therapeutic indications are: glycerol with tissue or kidney plasminogen activator to cause thrombosis, superoxide dimutase to scavenge tissue damaging free radicals, tumor necrosis factor for cancer therapy or colony stimulating factor and interferon, interleukin-2 or other lymphokine to enhance the immune system.
- body 102 of structure 100 may be impregnated with a first component of a multiple-part adhesive and that the staples, retained in staple receiving slots 36 of staple cartridge assembly 22 , may be coated with a second component (e.g., a reactant) of the multiple-part adhesive.
- a second component e.g., a reactant
- the first component of the adhesive is activated when the staples penetrate and capture body 102 of structure 100 during the firing sequence of surgical stapling device 10 , and the two components of the adhesive contact one another.
- annular support structure 100 includes at least one, preferably a pair of drapes, skirts or membranes 140 , 142 (e.g., a first membrane 140 and a second membrane 142 ) extending from outer terminal edge 106 of body 102 .
- membranes 140 , 142 are fabricated from a polymeric or plastic film including and not limited to polyethylene and the like.
- Each membrane 140 , 142 includes a first or outer surface 140 a , 142 a , respectively, and a second or inner surface 140 b , 142 b , respectively.
- first membrane 140 is unrolled in a first direction, preferably in a distal direction (e.g., in a direction substantially orthogonal to upper surface 110 of body 102 ), and second membrane 142 is unrolled in a second direction, preferably in a proximal direction (e.g., in a direction substantially orthogonal to lower surface 112 of body 102 ).
- support structure 100 desirably includes a rip-cord or tether 144 , 146 rolled-up into membranes 140 , 142 .
- Rip-cords 144 , 146 include free ends 144 a , 146 a which extend from membranes 140 , 142 when membranes 140 , 142 are in the rolled-up condition.
- membranes 140 , 142 are un-rolled or un-furled accordingly.
- body 102 of support structure 100 is formed of a foam material overmolded onto a relatively thin flexible material or film making up membranes or sleeves 140 , 142 .
- each membrane 140 , 142 extends approximately 2.0 cm from body 102 .
- first membrane 140 extends from body 102 by approximately 2.0 cm from upper surface 110 of body 102
- second membrane 142 extends from body 102 approximately 2.0 cm from lower surface 112 of body 102 .
- FIGS. 6-9 there is illustrated the use of surgical stapling device 10 and support structure 100 in an anastomosis procedure to effect joining of intestinal sections 66 and 68 .
- the anastomosis procedure is typically performed using minimally invasive surgical techniques including laparoscopic means and instrumentation.
- a diseased intestinal section has been previously removed, anvil assembly 30 has been introduced to the operative site either through a surgical incision or trans-anally and positioned within intestinal section 68 , and tubular body portion 20 of surgical stapling device 10 has been inserted trans-anally into intestinal section 66 .
- Intestinal sections 66 and 68 are also shown temporarily secured about their respective components (e.g., shaft 28 of anvil assembly 30 , and the distal end of tubular body portion 20 ) by conventional means such as a purse string suture “P”.
- Annular support structure 100 is then placed onto shaft 28 of anvil assembly 30 prior to the coupling of anvil assembly 30 to the distal end of tubular body portion 20 .
- shaft 28 of anvil assembly 30 is inserted into aperture 104 of body portion 102 .
- the surgeon maneuvers anvil assembly 30 until the proximal end of shaft 28 is inserted into the distal end of tubular body portion 20 of surgical stapling device 10 , wherein the mounting structure (not shown) within the distal end of tubular body portion 20 engages shaft 28 to effect the mounting.
- first membrane 140 is un-rolled or un-furled in a distal direction, as indicated by arrow “B”, so as to over-lie intestinal section 68
- second membrane 142 is un-rolled or un-furled in a proximal direction, as indicated by arrow “C”, so as to over-lie intestinal section 66
- first and second membranes 140 , 142 are un-rolled or un-furled by pulling on rip-cords 144 , 146 in a distal or proximal direction, as necessary.
- annular support structure 100 includes at least one, preferably a pair of membranes 150 , 152 (e.g., a first membrane 150 and a second membrane 152 ) extending from outer edge 106 of body 102 .
- Each membrane 150 and 152 includes two layers, an inner layer 150 a , 152 a , respectively, and an outer layer 150 b , 152 b , respectively.
- the materials selected for the construction of membranes 150 , 152 swell at different rates when in the presence of moisture or fluid. In this manner, membranes 150 , 152 will tend to bend or curl about the layer having the relatively slower rate of fluid swelling or fluid absorption.
- inner layer 150 a , 152 a of membranes 150 , 152 are constructed from a substantially non-absorbable (i.e., does not absorb moisture therein) or non-expanding (i.e., static) material, such as, for example, a bio-absorbable or resorbable mesh fabricated from polyglycolic acid, sold under the tradename DEXONTM, available from Tyco Healthcare Group LP, Norwalk, Conn. Other mesh, knit, woven and non-woven materials may be used.
- outer layer 150 b , 152 b of membranes 150 , 152 are constructed from an absorbable, resorbable or expanding (i.e., dynamic) material, such as, for example, hydrogel and the like.
- the difference in material properties between inner layers 150 a , 152 a and outer layers 150 b , 152 b of membranes 150 , 152 cause membranes 150 , 152 to curl or bend from the undeployed condition, wherein membranes 150 , 152 extend in a substantially radial direction, to a deployed condition, wherein membranes 150 , 152 extend in a direction substantially parallel to the central “X” axis (as shown in phantom in FIG. 12 ).
- FIGS. 13 and 14 there is illustrated the use of surgical stapling device 10 and support structure 100 including membranes 150 , 152 in an anastomosis procedure to effect joining of intestinal sections 66 and 68 .
- FIG. 13 illustrates the use of surgical stapling device 10 and support structure 100 including membranes 150 , 152 in an anastomosis procedure to effect joining of intestinal sections 66 and 68 .
- annular support structure 100 between intestinal sections 66 and 68 , wherein intestinal section 66 and 68 were previously secured about their respective components (e.g., shaft 28 of anvil assembly 30 , and the distal end of tubular body portion 20 ) by conventional means such as a purse string suture “P”, annular support structure 100 was positioned between intestinal sections 66 and 68 , and anvil assembly 30 was coupled to the distal end of tubular body portion 20 .
- membranes 150 , 152 begin to deploy (i.e., curl or bend from the substantially radially extended orientation to the orientation substantially parallel with the central “X” axis) as described above.
- first and second membranes 150 , 152 absorb fluid and swell (i.e., expand)
- first and second membranes 150 , 152 curl or bend to the side of membrane 150 , 152 which swells or expands at a rate slower, i.e., toward inner layers 150 a , 152 a .
- membranes 150 , 152 are deployed, as indicated by arrow “B”, first membrane 150 over-lies intestinal section 68 , and second membrane 152 over-lies intestinal section 66 , as indicated by arrow “C”.
- membranes 150 , 152 extend a predetermined distance over intestinal sections 66 and 68 (e.g., approximately 2 cm). Accordingly, when deployed, membranes 150 , 152 will adhere to the surface of intestinal sections 66 , 68 . Membranes 150 , 152 function to inhibit leakage from the anastomosis site and/or function to strengthen or reinforce intestinal sections 66 , 68 . With membranes 150 , 152 deployed, as seen in FIG. 14 , surgical stapling device 10 may be fired thereby stapling intestinal sections 66 , 68 to one another and cutting the portion of tissue and structure 100 disposed radially inward of the knife, to complete the anastomosis.
- surgical stapling device 10 may be fired thereby stapling intestinal sections 66 , 68 to one another and cutting the portion of tissue and structure 100 disposed radially inward of the knife, to complete the anastomosis.
- annular support structure 100 includes a series of ribs 156 , 158 provided on and/or in each membrane 150 , 152 , respectively.
- ribs 156 , 158 extend radially around the perimeter or circumference of membranes 150 , 152 .
- Ribs 156 , 158 are substantially radially oriented.
- Ribs 156 , 158 are fabricated from a shape memory material, alloy or the like, preferably, NITINOLTM and the like. It is further envisioned that ribs 156 , 158 may be fabricated from a bio-absorbable material.
- Ribs 156 , 158 have a memorized shape which is oriented substantially parallel to the central “X” axis of support structure 100 .
- support structure 100 has a first or un-deployed condition in which ribs 156 , 158 are in a biased rolled-up condition and membranes 150 , 152 are also rolled-up, and a second or deployed condition in which ribs 156 , 158 are in their memorized shape or condition and membranes 150 , 152 are extended.
- support structure 100 In use, with support structure in an un-deployed condition, support structure 100 is positioned in shaft 28 of anvil assembly 30 . With support structure 100 so positioned, support structure 100 is deployed when ribs 156 , 158 return to their memorized conditions. In particular, the return of ribs 156 , 158 to their memorized conditions extends membranes 150 , 152 over intestinal sections 66 and 68 and/or in a direction substantially parallel to the central “X” axis.
- Support structure 200 is substantially similar to support structure 100 and will only be described in detail to the extent necessary to identify differences in construction and operation.
- body 202 of support structure 200 includes a plurality of pores 214 extending therethrough.
- pores 214 are substantially parallel with the longitudinal “X” axis of body 202 .
- Pores 214 allow for healing to take place between a pair of apposed tissue surfaces. Additionally, since pores 214 are substantially parallel to the longitudinal “X” axis, leakage of fluid from the anastomotic site is reduced. While body 202 has been shown and described as including pores 214 , it is envisioned and within the scope of the present disclosure that body 202 may be perforated or may be constructed from a porous material.
- support structure 200 includes a rim or layer 220 of fluid expanding or water-swellable material, e.g., a hydrogel, disposed around outer terminal edge 206 of body 202 .
- Hydrogels contemplated for support structure 200 are identified in U.S. Pat. No. 5,505,952 to Jiang et al., the entire content of which is incorporated herein by reference.
- FIGS. 20-23 there is illustrated the use of support structure 200 in an anastomosis procedure to effect joining of intestinal sections 66 and 68 .
- the anastomosis procedure is typically performed using minimally invasive surgical techniques including laparoscopic means and instrumentation.
- support structure 200 has been placed onto shaft 28 of anvil assembly 30 , the anvil assembly 30 has been coupled to the distal end of tubular body portion 20 of surgical stapling device 10 , and surgical stapling device 10 has been fired thereby stapling intestinal sections 66 , 68 to one another and cutting the portion of tissue and support structure 200 disposed radially inward of the knife, to complete the anastomosis.
- pores 214 of body 202 allow for in-growth of intestinal sections 66 , 68 therein thereby improving the healing process.
- pores 214 of body 202 reduce the time required for intestinal sections 66 , 68 to contact one another during the healing process.
- intestinal sections 66 , 68 may contact one another immediately following the firing of surgical stapling device 10 , or pores 214 of body 202 define channels into which intestinal sections 66 , 68 may grow and come into contact with one another over time.
- rim 220 of support structure 200 is in a first or unexpanded (i.e., un-swelled) condition.
- rim 220 thereof begins to absorb moisture from the surrounding environment (e.g., water, saline, blood, etc.) and expand to a second or swelled condition.
- fluid may be dispensed onto the anastomosis site, especially onto rim 220 of support structure 200 in order to cause expanding and/or swelling of rim 220 .
- rim 220 of support structure 200 swells or expands, the radial gap “G” between intestinal sections 66 , 68 fills. Accordingly, rim 220 , when in the swelled or expanded condition acts as a seal, dam, stopper, barrier or the like to inhibit and/or prevent the leakage of the contents of the bowel into the abdominal region of the patient. In other words, the swelling of rim 220 results in the formation of a gasket-like seal around the outside of the anastomosis.
- a support structure in accordance with an alternate embodiment of the present disclosure, is generally designated as 300 .
- body 302 of support structure 300 may be formed entirely of resilient compressible foam or sponge-like material fabricated from a bio-absorable material or any other bio-compatible material disclosed above with regard to support structure 100 .
- body 302 of support structure 300 has an initial height or thickness “T 1 ” (e.g., the height or thickness when body 302 is fully expanded).
- body 302 has a diameter “D” which is at least equal to a diameter of tubular body portion 20 and/or anvil member 26 .
- the diameter “D” of body portion of support structure 300 is greater than the diameters of tubular body 20 and/or anvil member 26 .
- thickness “T 1 ” is greater than a quarter of the diameter “D”, when in the initial uncompressed condition.
- FIGS. 26-28 there is illustrated the use of surgical stapling device 10 and support structure 300 in an anastomosis procedure to effect joining of intestinal sections 66 and 68 .
- body 302 of support structure 300 is compressed therebetween.
- body 302 of support structure 300 is uncompressed and desirably extends radially beyond the outer terminal edges of tubular body portion 20 and/or anvil member 26 .
- body 302 of support structure 300 has a thickness substantially equal to “T 1 ”. Thereafter, upon complete approximation, body 302 of support structure 300 , in the region disposed between tubular body portion 20 and anvil member 26 , is compressed therebetween to a thickness “T 2 ”. Accordingly, the portion of support structure 300 disposed radially outward of tubular body portion 20 and anvil member 26 remains substantially uncompressed (e.g., having a thickness approximately equal to “T 1 ”) thereby filling and/or sealing the radial gap “G” between intestinal sections 66 , 68 .
- the body 302 is capable of filling any voids or recesses which may exist in the surface of intestinal sections 66 , 68 .
- surgical stapling device 10 is fired thereby stapling intestinal sections 66 , 68 to one another and cutting the portion of tissue and support structure 300 disposed radially inward of the knife, to complete the anastomosis.
- support structure 300 may have an unexpanded (e.g., collapsed or un-hydrated condition) in which body 302 of support structure 300 has a first diameter “D 1 ” and a first thickness “T 1 ”.
- anvil assembly 30 includes a network of channels 28 a formed in shaft 28 which are configured and arranged to dispense fluid onto and/or direct fluid into body 302 of support structure 300 . While channels 28 a have been shown and described, any structure for delivering fluid to body 302 of support structure 300 is contemplated by the present disclosure.
- fluid “F” is delivered to body 302 of support structure 300 thereby causing body 302 of support structure 300 to expand radially and longitudinally.
- the application of fluid “F” to body 302 of support structure 300 causes body 302 of support structure 300 to expand and hydrate.
- body 302 of support structure 300 has a second diameter “D 2 ”, larger than first diameter “D 1 ”, and a second thickness “T 2 ”, larger than first thickness “T 1 ”.
- anvil assembly 30 is introduced into the surgical site as described above. Following connection of anvil assembly 30 to the distal end of tubular body portion 20 , fluid “F” is delivered to body 302 of support structure 300 , thereby causing support structure 300 to expand. Following expansion of support structure 300 , the surgical procedure is continued as described above.
- the fluid “F” may be a cross-linker or other substance which is reactive with the foam of body 302 of support structure 300 to thereby form or create a support structure 300 of wound treatment material (e.g., adhesive, sealant, hemostat, medicament, etc.). It is contemplated that body 302 of support structure 300 may be a foam made from a first part of a multiple-part wound treatment material, and fluid “F” may include a second part of the multiple-part wound treatment material. In this manner, the wound treatment material is formed upon interaction of fluid “F” with body 302 of support structure 300 .
- wound treatment material e.g., adhesive, sealant, hemostat, medicament, etc.
- the support structures of the present disclosure function to strengthen the anastomosis and reduce the occurrence of bleeding, leaking and stricture. It is also to be appreciated that the support structures of the present disclosure may be utilized in a number of other applications and is not limited solely to bowel or bronchus anastomosis.
- an ultraviolet light activated adhesive to be used in connection with any of the support structures described above.
- the support structure is irradiated with UV light to thereby activate the adhesive thereof.
- each of the support structures described herein may be used with an annular surgical anastomosing device, not including any staples for securing tissue together, which is capable of approximating, adhering and cutting tissue.
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Abstract
Description
Claims (24)
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EP1647231B1 (en) | 2017-11-29 |
CA2523333A1 (en) | 2006-04-18 |
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JP4817793B2 (en) | 2011-11-16 |
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US8313014B2 (en) | 2012-11-20 |
US11045200B2 (en) | 2021-06-29 |
JP2011245323A (en) | 2011-12-08 |
US20110057016A1 (en) | 2011-03-10 |
US9445817B2 (en) | 2016-09-20 |
US7938307B2 (en) | 2011-05-10 |
JP2006110356A (en) | 2006-04-27 |
US20190175180A1 (en) | 2019-06-13 |
US20110046650A1 (en) | 2011-02-24 |
US20110230901A1 (en) | 2011-09-22 |
EP1647231A1 (en) | 2006-04-19 |
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